1

I want to know how exactly MOV BYTE PTR instruction works, I have one example here that I can't understand the result. Check it:

MOV CL,BYTE PTR DS:[ESI]

----Ollydbg show this------
DS:[01EA22E0]=41 ('A')
CL=B0

Why CL = B0? Why CL isn't 41? If I go to ESI in dump, I have this

01EA22E0: 41 47 00 C5 B9 F1 63 3C... But any B0 ;(

Check my print:

mov byte ptr

I really need to solve this, any help will be welcome.

3
  • Probably because you are using DS register to specify the segment. Try to remove it and just do MOV CL,BYTE PTR [ESI]
    – Elalfer
    Commented Oct 11, 2013 at 20:52
  • 2
    @Elalfer: I think if you don't specify DS:, you get it by default, so I don't think that will help.
    – Ira Baxter
    Commented Oct 11, 2013 at 21:00
  • 4
    I'm not familiar with Ollydbg. Did you actually step past the instruction, so it got executed? What you show is consistent with the instruction about to be executed.
    – Ira Baxter
    Commented Oct 11, 2013 at 21:02

1 Answer 1

9

It is because the debugger is stopped at that instruction, it wasn't actually executed yet. You'll have to single-step one more time to see the CL register updated with the content of memory.

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